Abstract

In order to improve the hydrodynamic performance of pump-jet propulsion (PJP) when matching stator with the rotor, the RANS method with SST k-ω turbulence model is employed to study the influence of six kinds of stator parameters, which are classified into three groups, i.e., stator solidity, stator angles and rotor–stator spacing (S). Results show that the stator solidity involves the blade number (Ns) and chord length (L), has an obvious acceleration effect at and after stator, and produces a higher thrust and torque with a slight efficiency change. Further comparing Ns and L results, we find greater distinctions between the two cases when stator solidity is greatly adjusted. Three stator angles, i.e., stagger angle (α), lean angle (γ), and sweep angle (β), are studied. The α has the biggest effect on the thrust, torque, and efficiency; meanwhile, it shifts the advance number that corresponds to maximum efficiency. The effect of γ is similar to α, but its influence is far less than α. However, there is little difference between various β cases except for off-design conditions, where the efficiency drops dramatically as β increases. The S has a slight effect on PJP performance. Even though S decreases 34% relative to the original PJP, the rotor thrust and torque increase by less than 1%. In addition, we compare torque balance locations under various parameters, and each component force is analyzed in detail to explain the reason for performance variation. The present work is conducive to future optimization in PJP design.

Highlights

  • The pump-jet propulsion (PJP), which consists of a stator, a rotor, and a duct, is a special type of underwater thruster

  • It will be modified by translating the stator blade along the axial direction with a step 5 mm and treated as a dimensionless value normalized by Dr The S for the original PJP is 0.35 Dr

  • In order to assess the performance of PJP, the dimensionless hydrodynamic coefficients are defined as follows

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Summary

Introduction

The pump-jet propulsion (PJP), which consists of a stator (a stationary blade row), a rotor (a rotating blade row), and a duct, is a special type of underwater thruster. Zierke et al [5] are earlier researchers who performed various test methods in the underwater turbomachine with stator. Many academics utilized the RANS method with various turbulence to study PJP; Lee et al [10] investigated an IGV/rotor propulsion pump using a standard k-ε turbulence model with a low-Reynolds-number approach near the wall. Results such as blade loadings and wake vortex patterns are compared with Zierke’s [5] experimental results.

Numerical Simulation Methods
Mesh and Numerical Setup
Verification of Grid
Stator number
Chord length
Influence of Stator Angles
Sweep angle
74 A3 plane 72
Findings
74 A3 plane 72 70 68 66 64 62 74 A4 plane 72 70 68 66 64 62
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